Evans Christopher M, Bridges Colin R, Sanoja Gabriel E, Bartels Joshua, Segalman Rachel A
Department of Chemical and Biological Engineering, University of California, Berkeley, California 94720, United States.
ACS Macro Lett. 2016 Aug 16;5(8):925-930. doi: 10.1021/acsmacrolett.6b00534. Epub 2016 Jul 15.
The role of ion placement was systematically investigated in imidazolium bis(trifluoromethane)sulfonimide (ImTFSI) polymerized ionic liquids (PILs) containing pendant charges and charges in the backbone (sometimes called ionenes). The backbone PILs were synthesized via a facile step growth route, and pendant PILs were synthesized via RAFT. Both PILs were designed to have nearly identical charge density, and the conductivity was found to be substantially enhanced in the backbone PIL systems even after accounting for differences in the glass transition temperature (). Wide-angle X-ray scattering (WAXS) revealed an invariance in the location of the amorphous halo between the two systems, while the anion-anion correlation peak was shifted to lower scattering wavevector () in the backbone PILs. This indicates an increase in the correlation length of ions and is consistent with charge transport along a more correlated pathway following the polymer backbone. Due to the linear nature of the backbone PILs, crystallization was observed and correlated with changes in conductivity. Upon crystallization, the conductivity dropped, and eventually, two populations of mobile ions were observed and attributed to ions in the amorphous and near-crystallite regions. The present work demonstrates the important role of ion placement on local structure and conductivity as well as the ability of backbone PILs to be used as controllable optical or dielectric materials based on crystallization or processing history.
在含有侧链电荷和主链电荷(有时称为离子烯)的咪唑鎓双(三氟甲烷)磺酰亚胺(ImTFSI)聚合离子液体(PIL)中,系统地研究了离子位置的作用。主链PIL通过简便的逐步生长路线合成,侧链PIL通过可逆加成-断裂链转移(RAFT)合成。两种PIL的设计电荷密度几乎相同,即使考虑到玻璃化转变温度()的差异,主链PIL体系中的电导率仍显著提高。广角X射线散射(WAXS)显示两个体系之间非晶晕位置不变,而主链PIL中阴离子-阴离子相关峰向较低散射波矢()移动。这表明离子的相关长度增加,并且与沿着聚合物主链更相关路径的电荷传输一致。由于主链PIL的线性性质,观察到结晶现象并与电导率变化相关。结晶时,电导率下降,最终观察到两种可移动离子群,并归因于非晶区和近微晶区中的离子。本工作证明了离子位置对局部结构和电导率的重要作用,以及主链PIL作为基于结晶或加工历史的可控光学或介电材料的能力。